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Phase transformation mechanism in lithium manganese nickel oxide revealed by single-crystal hard X-ray microscopy

机译:单晶硬X射线显微镜揭示锂锰镍氧化物的相变机理

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摘要

Understanding the reaction pathway and kinetics of solid-state phase transformation is critical in designing advanced electrode materials with better performance and stability. Despite the first-order phase transition with a large lattice mismatch between the involved phases, spinel LiMn1.5Ni0.5O4 is capable of fast rate even at large particle size, presenting an enigma yet to be understood. The present study uses advanced two-dimensional and three-dimensional nano-tomography on a series of well-formed LixMn1.5Ni0.5O4 (0≤x≤1) crystals to visualize the mesoscale phase distribution, as a function of Li content at the sub-particle level. Inhomogeneity along with the coexistence of Li-rich and Li-poor phases are broadly observed on partially delithiated crystals, providing direct evidence for a concurrent nucleation and growth process instead of a shrinking-core or a particle-by-particle process. Superior kinetics of (100) facets at the vertices of truncated octahedral particles promote preferential delithiation, whereas the observation of strain-induced cracking suggests mechanical degradation in the material.
机译:了解固态相变的反应途径和动力学对于设计具有更好性能和稳定性的先进电极材料至关重要。尽管所涉及的相之间具有较大的晶格失配的一阶相变,尖晶石LiMn1.5Ni0.5O4甚至在大粒径下仍能快速生长,呈现出一个未知的谜团。本研究在一系列结构良好的LixMn1.5Ni0.5O4(0≤x≤1)晶体上使用先进的二维和三维纳米断层扫描技术,以可视化中尺度相分布,作为Li含量的函数。亚粒子水平。在部分脱锂的晶体上广泛观察到不均匀性以及富锂相和贫锂相的共存,这为并发成核和生长过程(而不是收缩核或逐颗粒过程)提供了直接证据。截短的八面体粒子的顶点处的(100)刻面的优异动力学特性促进了优先脱锂,而观察到的应变诱发的开裂则表明材料发生了机械降解。

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